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Some site I'm programming is using both ASP.NET MVC and WebForms.

I have a partial view and I want to include this inside a webform. The partial view has some code that has to be processed in the server, so using Response.WriteFile don't work. It should work with javascript disabled.

How can I do this?

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I have the same problem - Html.RenderPartial can't work on WebForms, but there should still be a way to do this. –  Keith Jul 1 '09 at 12:54
1  
Finally made this work - see updated answer –  Keith Jul 3 '09 at 11:11

6 Answers 6

up vote 59 down vote accepted

I had a look at the MVC source to see if I could figure out how to do this. There seems to be very close coupling between controller context, views, view data, routing data and the html render methods.

Basically in order to make this happen you need to create all of these extra elements. Some of them are relatively simple (such as the view data) but some are a bit more complex - for instance the routing data will consider the current WebForms page to be ignored.

The big problem appears to be the HttpContext - MVC pages rely on a HttpContextBase (rather than HttpContext like WebForms do) and while both implement IServiceProvider they're not related. The designers of MVC made a deliberate decision not to change the legacy WebForms to use the new context base, however they did provide a wrapper.

This works and lets you add a partial view to a WebForm:

public class WebFormController : Controller { }

public static class WebFormMVCUtil
{

    public static void RenderPartial( string partialName, object model )
    {
        //get a wrapper for the legacy WebForm context
        var httpCtx = new HttpContextWrapper( System.Web.HttpContext.Current );

        //create a mock route that points to the empty controller
        var rt = new RouteData();
        rt.Values.Add( "controller", "WebFormController" );

        //create a controller context for the route and http context
        var ctx = new ControllerContext( 
            new RequestContext( httpCtx, rt ), new WebFormController() );

        //find the partial view using the viewengine
        var view = ViewEngines.Engines.FindPartialView( ctx, partialName ).View;

        //create a view context and assign the model
        var vctx = new ViewContext( ctx, view, 
            new ViewDataDictionary { Model = model }, 
            new TempDataDictionary() );

        //render the partial view
        view.Render( vctx, System.Web.HttpContext.Current.Response.Output );
    }

}

Then in your WebForm you can do this:

<% WebFormMVCUtil.RenderPartial( "ViewName", this.GetModel() ); %>
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5  
+1 for the effort –  eKek0 Jul 2 '09 at 13:31
1  
This works one a basic page request, but view.Render() blows up with the "Validation of viewstate MAC failed..." exception if you do any post backs on the container page. Can you confirm the same, Keith? –  Kurt Schindler Jul 31 '09 at 16:39
    
I don't get that viewstate error - however I think it would occur is the partial view that you're rendering includes any WebForm controls. This RenderPartial method fires on render - after any viewstate. WebForm controls inside the partial view are going to be broken and outside of the normal page lifecycle. –  Keith Aug 4 '09 at 9:30
    
Actually I have now - it seems to occur for some WebForms control hierarchies and not for others. Weirdly the error is thrown from inside the MVC render methods, as if the underlying call to Page. Render is expecting to do page and event MAC validation, which would always be entirely wrong in MVC. –  Keith Aug 11 '09 at 9:12
1  
+1 like butta, thank you –  jcollum Jul 27 '12 at 16:36

most obvious way would be via AJAX

something like this (using jQuery)

<div id="mvcpartial"></div>

<script type="text/javascript">
$(document).load(function () {
    $.ajax(
    {    
        type: "GET",
        url : "urltoyourmvcaction",
        success : function (msg) { $("#mvcpartial").html(msg); }
    });
});
</script>
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1  
From the question: It should work with javascript disabled. –  Craig Stuntz Mar 31 '09 at 20:59
5  
was added after my response )-: –  Alexander Taran Mar 31 '09 at 21:07

This is great, thanks!

I'm using MVC 2 on .NET 4, which requires a TextWriter gets passed into the ViewContext, so you have to pass in httpContextWrapper.Response.Output as shown below.

    public static void RenderPartial(String partialName, Object model)
    {
        // get a wrapper for the legacy WebForm context
        var httpContextWrapper = new HttpContextWrapper(HttpContext.Current);

        // create a mock route that points to the empty controller
        var routeData = new RouteData();
        routeData.Values.Add(_controller, _webFormController);

        // create a controller context for the route and http context
        var controllerContext = new ControllerContext(new RequestContext(httpContextWrapper, routeData), new WebFormController());

        // find the partial view using the viewengine
        var view = ViewEngines.Engines.FindPartialView(controllerContext, partialName).View as WebFormView;

        // create a view context and assign the model
        var viewContext = new ViewContext(controllerContext, view, new ViewDataDictionary { Model = model }, new TempDataDictionary(), httpContextWrapper.Response.Output);

        // render the partial view
        view.Render(viewContext, httpContextWrapper.Response.Output);
    }
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This works only when I do NOT cast the View to WebFormView. –  Jenny O'Reilly Jun 17 '13 at 11:02

Here's a similar approach that has been working for me. The strategy is to render the partial view to a string, then output that in the WebForm page.

 public class TemplateHelper
{
    /// <summary>
    /// Render a Partial View (MVC User Control, .ascx) to a string using the given ViewData.
    /// http://www.joeyb.org/blog/2010/01/23/aspnet-mvc-2-render-template-to-string
    /// </summary>
    /// <param name="controlName"></param>
    /// <param name="viewData"></param>
    /// <returns></returns>
    public static string RenderPartialToString(string controlName, object viewData)
    {
        ViewDataDictionary vd = new ViewDataDictionary(viewData);
        ViewPage vp = new ViewPage { ViewData = vd};
        Control control = vp.LoadControl(controlName);

        vp.Controls.Add(control);

        StringBuilder sb = new StringBuilder();
        using (StringWriter sw = new StringWriter(sb))
        {
            using (HtmlTextWriter tw = new HtmlTextWriter(sw))
            {
                vp.RenderControl(tw);
            }
        }

        return sb.ToString();
    }
}

In the page codebehind, you can do

public partial class TestPartial : System.Web.UI.Page
{
    public string NavigationBarContent
    {
        get;
        set;
    }

    protected void Page_Load(object sender, EventArgs e)
    {
        NavigationVM oVM = new NavigationVM();

        NavigationBarContent = TemplateHelper.RenderPartialToString("~/Views/Shared/NavigationBar.ascx", oVM);

    }
}

and in the page you'll have access to the rendered content

<%= NavigationBarContent %>

Hope that helps!

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This is actually great, especially when you can put script blocks somewhere! –  jrizzo Apr 20 '12 at 21:36
    
This does not work for MVC partial views. –  Jenny O'Reilly Jun 17 '13 at 11:06

This solution takes a different approach. It defines a System.Web.UI.UserControl which can be place on any Web Form and be configured to display the content from any URL…including an MVC partial view. This approach is similar to an AJAX call for HTML in that parameters (if any) are given via the URL query string.

First, define a user control in 2 files:

/controls/PartialViewControl.ascx file

<%@ Control Language="C#" 
AutoEventWireup="true" 
CodeFile="PartialViewControl.ascx.cs" 
Inherits="PartialViewControl" %>

/controls/PartialViewControl.ascx.cs:

public partial class PartialViewControl : System.Web.UI.UserControl {
    [Browsable(true),
    Category("Configutation"),
    Description("Specifies an absolute or relative path to the content to display.")]
    public string contentUrl { get; set; }

    protected override void Render(HtmlTextWriter writer) {
        string requestPath = (contentUrl.StartsWith("http") ? contentUrl : "http://" + Request.Url.DnsSafeHost + Page.ResolveUrl(contentUrl));
        WebRequest request = WebRequest.Create(requestPath);
        WebResponse response = request.GetResponse();
        Stream responseStream = response.GetResponseStream();
        var responseStreamReader = new StreamReader(responseStream);
        var buffer = new char[32768];
        int read;
        while ((read = responseStreamReader.Read(buffer, 0, buffer.Length)) > 0) {
            writer.Write(buffer, 0, read);
        }
    }
}

Then add the user control to your web form page:

<%@ Page Language="C#" %>
<%@ Register Src="~/controls/PartialViewControl.ascx" TagPrefix="mcs" TagName="PartialViewControl" %>
<h1>My MVC Partial View</h1>
<p>Below is the content from by MVC partial view (or any other URL).</p>
<mcs:PartialViewControl runat="server" contentUrl="/MyMVCView/"  />
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I Think this is the best answer, you can reuse the UserControl if you are going to use this more than one time, just changing the contentUrl, I just advice that the current requestPath doesn't get the Port, if in case you are using a different port thant 80, it´s going to rise an error. –  Daniel Jul 10 at 19:08
    
I Found a problem with it, this method generates a new Session for the request. So it´s like having two sites working at the same place. –  Daniel Jul 17 at 13:37
    
Yes, if you are using server-side sessions to hold your application state, this solution would not work. However, I prefer maintaining state on the client. –  Bill Heitstuman Jul 27 at 5:17

It took a while, but I´v found a great solution. As Keith solution works for a lot of people, but in certain situations it´s not the best, because sometimes you want your application to go through the process of the controller for rendering the view, and Keith's solution just render the view with a given model I'm presenting here a new solution that will run the normal process.

General Steps: 1. Create a Utility class 2. Create a Dummy Controler with a dummy view 3. In your aspx or master page, call the utility method to render partial passing the Controller, view and if you need, the model to render (as an object),

Let´s check it closely in this example

1) Create A Class called MVCUtility and create the following methods:

    //Render a partial view, like Keith's solution
    private static void RenderPartial(string partialViewName, object model)
    {
        HttpContextBase httpContextBase = new HttpContextWrapper(HttpContext.Current);
        RouteData routeData = new RouteData();
        routeData.Values.Add("controller", "Dummy");
        ControllerContext controllerContext = new ControllerContext(new RequestContext(httpContextBase, routeData), new DummyController());
        IView view = FindPartialView(controllerContext, partialViewName);
        ViewContext viewContext = new ViewContext(controllerContext, view, new ViewDataDictionary { Model = model }, new TempDataDictionary(), httpContextBase.Response.Output);
        view.Render(viewContext, httpContextBase.Response.Output);
    }

    //Find the view, if not throw an exception
    private static IView FindPartialView(ControllerContext controllerContext, string partialViewName)
    {
        ViewEngineResult result = ViewEngines.Engines.FindPartialView(controllerContext, partialViewName);
        if (result.View != null)
        {
            return result.View;
        }
        StringBuilder locationsText = new StringBuilder();
        foreach (string location in result.SearchedLocations)
        {
            locationsText.AppendLine();
            locationsText.Append(location);
        }
        throw new InvalidOperationException(String.Format("Partial view {0} not found. Locations Searched: {1}", partialViewName, locationsText));
    }       

    //Here the method that will be called from MasterPage or Aspx
    public static void RenderAction(string controllerName, string actionName, object routeValues)
    {
        RenderPartial("PartialRender", new RenderActionViewModel() { ControllerName = controllerName, ActionName = actionName, RouteValues = routeValues });
    }

Create a class for passing the parameters, I will call here RendeActionViewModel (you can create in the same file of the MvcUtility Class)

    public class RenderActionViewModel
    {
        public string ControllerName { get; set; }
        public string ActionName { get; set; }
        public object RouteValues { get; set; }
    }

2) Now create a Controller named DummyController

    //Here the Dummy controller with Dummy view
    public class DummyController : Controller
    {
      public ActionResult PartialRender()
      {
          return PartialView();
      }

    }

Create a Dummy view called PartialRender.cshtml (razor view) for the DummyController with the following content, note that it will perform another Render Action using the Html helper

@model Portal.MVC.MvcUtility.RenderActionViewModel
@{Html.RenderAction(Model.ActionName, Model.ControllerName, Model.RouteValues);}

3) Now just put this in your masterpage or aspx file, to partial render a view that you want. Note that this is a great answer when you have multiple razor's views that you want to mix with your masterpage or aspx pages. (suposing we have a PartialView called Login for the Controller Home

    <% MyApplication.MvcUtility.RenderAction("Home", "Login", new { }); %>

or if you have a model for passing into the Action

    <% MyApplication.MvcUtility.RenderAction("Home", "Login", new { Name="Daniel", Age = 30 }); %>

This solution is great, doesn't use ajax call, which will not cause a delayed render for the nested views, it doens´t make a new WebRequest so it will not bring you a new session, and it will process the method for retrieving the ActionResult for the view you want, it works without passing any model

Thanks to Using MVC RenderAction within a Webform

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